Microfluidics as a new tool in radiation biology

被引:18
|
作者
Lacombe, Jerome [1 ]
Phillips, Shanna Leslie [1 ,2 ]
Zenhausern, Frederic [1 ,2 ,3 ]
机构
[1] Univ Arizona, Ctr Appl NanoBiosci & Med, 145 S 79th St, Chandler, AZ 85226 USA
[2] Translat Genom Res Inst, 445 N Fifth St, Phoenix, AZ 85004 USA
[3] Coll Med Phoenix, Dept Basic Med Sci, 425 N 5th St, Phoenix, AZ 85004 USA
关键词
Microfluidics; Radiation research; Radiobiological models; Organ-on-a-chip; Biodosimetry markers; Cancer; PERIPHERAL-BLOOD LYMPHOCYTES; ON-A-CHIP; GENE-EXPRESSION; CAENORHABDITIS-ELEGANS; IN-VITRO; C-ELEGANS; IONIZING-RADIATION; DOSE ASSESSMENT; DRUG DISCOVERY; HUMAN EXPOSURE;
D O I
10.1016/j.canlet.2015.11.033
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Ionizing radiations interact with molecules at the cellular and molecular levels leading to several biochemical modifications that may be responsible for biological effects on tissue or whole organisms. The study of these changes is difficult because of the complexity of the biological response(s) to radiations and the lack of reliable models able to mimic the whole molecular phenomenon and different communications between the various cell networks, from the cell activation to the macroscopic effect at the tissue or organismal level. Microfluidics, the science and technology of systems that can handle small amounts of fluids in confined and controlled environment, has been an emerging field for several years. Some microfluidic devices, even at early stages of development, may already help radiobiological research by proposing new approaches to study cellular, tissue and total-body behavior upon irradiation. These devices may also be used in clinical biodosimetry since microfluidic technology is frequently developed for integrating complex bioassay chemistries into automated user-friendly, reproducible and sensitive analyses. In this review, we discuss the use, numerous advantages, and possible future of microfluidic technology in the field of radiobiology. We will also examine the disadvantages and required improvements for microfluidics to be fully practical in radiation research and to become an enabling tool for radiobiologists and radiation oncologists. (C) 2015 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:292 / 300
页数:9
相关论文
共 50 条
  • [31] Microfluidics: streamlining discovery in worm biology
    S Elizabeth Hulme
    Sergey S Shevkoplyas
    Aravinthan Samuel
    Nature Methods, 2008, 5 : 589 - 590
  • [32] Applications of Microfluidics in Stem Cell Biology
    Zhang Q.
    Austin R.H.
    Zhang, Q. (qzhang@princeton.edu), 2012, Springer Science and Business Media, LLC (02) : 277 - 286
  • [33] Cell biology at the interface of nanobiosensors and microfluidics
    Bhalla, Nikhil
    Chiang, Hung-Ju
    Shen, Amy Q.
    MICROFLUIDICS IN CELL BIOLOGY, PT C: MICROFLUIDICS FOR CELLULAR AND SUBCELLULAR ANALYSIS, 2018, 148 : 203 - 227
  • [34] Microfluidics in systems biology and biodiversity exploration
    Terekhov, S.
    Baranova, M.
    Pipiya, S.
    Smirnov, I.
    Gabibov, A.
    FEBS OPEN BIO, 2022, 12 : 53 - 53
  • [35] Microfluidics and its applications in quantitative biology
    Yuhai Tu
    Quantitative Biology, 2013, 1 (04) : 272 - 280
  • [36] Microfluidics: streamlining discovery in worm biology
    Hulme, S. Elizabeth
    Shevkoplyas, Sergey S.
    Samuel, Aravinthan
    NATURE METHODS, 2008, 5 (07) : 589 - 590
  • [37] The Potential Impact of Droplet Microfluidics in Biology
    Schneider, Thomas
    Kreutz, Jason
    Chiu, Daniel T.
    ANALYTICAL CHEMISTRY, 2013, 85 (07) : 3476 - 3482
  • [38] Microfluidics Approaches in Modern Developmental Biology
    Spirov, A., V
    RUSSIAN JOURNAL OF DEVELOPMENTAL BIOLOGY, 2018, 49 (03) : 146 - 158
  • [39] DIGITAL MICROFLUIDICS AT THE SERVICE OF SYNTHETIC BIOLOGY
    Bibette, Jerome
    Boitard, Laurent
    Grinbaum, Alexei
    BIOFUTUR, 2013, (339) : 40 - 42
  • [40] Magnetofection as a new tool to study microglia biology
    Jose Luis Venero
    Miguel Angel Burguillos
    NeuralRegenerationResearch, 2019, 14 (05) : 767 - 768